US8201246B1 - Preventing malicious codes from performing malicious actions in a computer system - Google Patents
Preventing malicious codes from performing malicious actions in a computer system Download PDFInfo
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- US8201246B1 US8201246B1 US12/072,292 US7229208A US8201246B1 US 8201246 B1 US8201246 B1 US 8201246B1 US 7229208 A US7229208 A US 7229208A US 8201246 B1 US8201246 B1 US 8201246B1
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F21/00—Security arrangements for protecting computers, components thereof, programs or data against unauthorised activity
- G06F21/50—Monitoring users, programs or devices to maintain the integrity of platforms, e.g. of processors, firmware or operating systems
- G06F21/55—Detecting local intrusion or implementing counter-measures
- G06F21/554—Detecting local intrusion or implementing counter-measures involving event detection and direct action
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F9/00—Arrangements for program control, e.g. control units
- G06F9/06—Arrangements for program control, e.g. control units using stored programs, i.e. using an internal store of processing equipment to receive or retain programs
- G06F9/44—Arrangements for executing specific programs
- G06F9/455—Emulation; Interpretation; Software simulation, e.g. virtualisation or emulation of application or operating system execution engines
- G06F9/45533—Hypervisors; Virtual machine monitors
- G06F9/45558—Hypervisor-specific management and integration aspects
- G06F2009/45587—Isolation or security of virtual machine instances
Definitions
- the present invention relates generally to computer security, and more particularly but not exclusively to methods and apparatus for combating malicious codes.
- viruses Computer viruses, worms, Trojans, rootkits, and spyware are examples of malicious codes that have plagued computer systems throughout the world. Malicious codes, which are also collectively referred to simply as “viruses” or “malware,” may be detected using antivirus techniques implemented in software, hardware, or a combination of hardware and software.
- An antivirus may employ a scan engine and malicious code patterns, which are also referred to as “virus patterns.” To scan data for viruses, the scan engine compares the content of the data to the virus patterns using a pattern matching algorithm. The data is deemed infected if a match is found. In that case, various cleaning steps may be performed to prevent the virus from proliferating including quarantine, disinfection, removal, alerting the user or administrator, and so on. Virus patterns have to be continually updated to keep up with the ever increasing number and sophistication of malicious codes.
- Malicious codes may be prevented from performing malicious actions in a computer that does not have a virtual machine by simulating presence of the virtual machine.
- the action may be intercepted to determine if the computer program is malicious code probing the computer for presence of the virtual machine.
- a response to the action may be in accordance with convention of the virtual machine when the action is deemed to be for purposes of detecting the virtual machine. Otherwise, the action may be allowed to proceed.
- FIG. 1 shows a schematic diagram of a computer in accordance with an embodiment of the present invention.
- FIG. 2 shows a flow diagram schematically illustrating the operation of a virtual machine presence simulator in accordance with an embodiment of the present invention.
- FIG. 3 shows a flow diagram of a method of preventing malicious codes from performing malicious actions in a computer system in accordance with an embodiment of the present invention.
- ком ⁇ онент may be implemented in hardware, software, or a combination of hardware and software (e.g., firmware).
- Software components may be in the form of computer-readable program code stored in a computer-readable storage medium, such as memory, mass storage device, or removable storage device.
- a computer-readable storage medium may comprise computer-readable program code for performing the function of a particular component.
- computer memory may be configured to include one or more components, which may be executed by a processor.
- Software components may be implemented in logic circuits, for example. Components may be implemented separately in multiple modules or together in a single module.
- Antivirus may be implemented in a virtual machine.
- a virtual machine comprises software that creates a virtualized environment between a computer hardware platform and its operating system.
- Virtual machines may be implemented using commercially-available virtualization software, such as those from VMWare, Inc.
- a virtual machine provides a higher level of protection and control for antivirus operations, making it an effective environment for detecting and removing malicious codes.
- malicious code authors try to get around virtual machine-based antivirus by detecting for the presence of a virtual machine and, if a virtual machine is detected, behaving differently to avoid detection. For example, malicious codes may terminate themselves or not perform any action in a virtual machine environment. Embodiments of the present invention take advantage of this malicious code behavior to prevent malicious codes from performing malicious actions in computers that do not have virtual machines.
- the computer 100 may be employed as a client computer employed by an end-user, for example.
- the computer 100 may have less or more components to meet the needs of a particular application.
- the computer 100 may include a processor 101 , such as those from the Intel Corporation or Advanced Micro Devices, for example.
- the processor 101 comprises an Intel® x86 processor.
- the computer 100 may have one or more buses 103 coupling its various components.
- the computer 100 may include one or more user input devices 102 (e.g., keyboard, mouse), one or more data storage devices 106 (e.g., hard drive, optical disk, USB memory), a display monitor 104 (e.g., LCD, flat panel monitor, CRT), a computer network interface 105 (e.g., network adapter, modem), and a main memory 108 (e.g., RAM).
- user input devices 102 e.g., keyboard, mouse
- data storage devices 106 e.g., hard drive, optical disk, USB memory
- a display monitor 104 e.g., LCD, flat panel monitor, CRT
- a computer network interface 105 e.g., network adapter, modem
- main memory 108 e.g., RAM
- the main memory 108 includes a virtual machine presence simulator 112 and an instruction list 113 .
- the presence simulator 112 and the instruction list 113 may be loaded from the data storage device 106 to the main memory 108 for execution by the processor 101 .
- the computer network interface 105 may be coupled to a computer network 109 .
- the computer does not have or run a virtual machine.
- the virtual machine presence simulator 112 may comprise computer-readable program code for simulating the presence of a virtual machine in computers that do not have a virtual machine. That is, the presence simulator 112 makes the computer 100 appear to be running a virtual machine even though it is not.
- the presence simulator 112 is configured to intercept an action from a computer program running in the computer 100 , determine if the action is for purposes of detecting a virtual machine, and, if so, respond to the action as if the computer program is in a virtual machine environment. Otherwise, if the action is not detecting for the presence of a virtual machine, the presence simulator 112 may allow the action to proceed.
- the instruction list 113 may contain a listing of computer instructions handled differently in the computer 100 depending on whether or a virtual machine is running. Examples of such instructions include the IN and OUT instructions, which will not trigger an exception in an Intel® x86 processor in user mode running virtualization software from VMWare, Inc. Malicious codes probing the computer 100 for presence of a virtual machine may send an IN or OUT instruction to detect a virtual machine. If the IN or OUT instruction results in an exception, the malicious code assumes it is not running in a virtual machine. Otherwise, if no exception occurred, the malicious code assumes it is in a virtual machine and behaves accordingly to escape detection. For example, in that case, the malicious code may terminate itself or not perform any malicious actions. As can be appreciated, the instruction list 113 may be customized for particular types of processors.
- the presence simulator 112 may be configured to intercept an instruction from a computer program in user mode and compare the instruction to those in the instruction list 113 . If a match is found, the presence simulator 112 may deem that the computer program comprises malicious code detecting for the presence of a virtual machine. Detecting for presence of a virtual machine is relatively suspicious in the computer 100 , which does not run a virtual machine and accordingly does not expect programs to be looking for a virtual machine. In that case, the presence simulator 112 may respond to the instruction in a manner that makes it appear a virtual machine is running in the computer 100 . For example, the presence simulator 112 may simulate execution of an IN or OUT instruction in a way that does not result in an exception.
- FIG. 2 shows a flow diagram schematically illustrating the operation of the presence simulator 112 in accordance with an embodiment of the present invention.
- the presence simulator 112 and a malware 206 are executed by the processor 101 in the memory 108 in user (as opposed to kernel) mode.
- the malware 206 may comprise malicious code configured to check whether the underlying operating system environment comprises virtualization software from VMWare, Inc., for example. That is, the malware 206 is configured to determine if it is in a virtual machine prior to performing a malicious action, such as stealing confidential information, deleting files, sending unauthorized emails, etc. in the computer 100 . Accordingly, in the example of FIG. 2 , the malware 206 attempts to execute an instruction that is handled differently by the processor 101 depending on whether or not the malware 206 is running in a virtual machine (arrow 201 ).
- the presence simulator 112 intercepts the instruction and compares the instruction to those in the instruction list 113 (arrow 202 ). If the instruction is included in the instruction list 113 , the presence simulator 112 responds to the instruction in the same manner the processor 101 would if the malware 206 was in a virtual machine (arrow 203 ). This misleads the malware 206 into assuming that it is in a virtual machine, making the malware 206 terminate itself or not perform any malicious action to prevent detection.
- this prevents the malware 206 from causing damage in the computer 100 .
- the malware 206 may be detected and removed in a subsequent virus scan using a commercially-available antivirus, especially after the malware 206 is widely discovered and addressed in later developed virus patterns.
- the presence simulator 112 assumes that the instruction is not for detection of a virtual machine. In that case, the presence simulator 112 allows the instruction to be executed by the processor 101 (arrow 204 ). For example, the presence simulator 112 may simply pass the instruction to the operating system for execution by the processor 101 . Arrow 204 is depicted with a dashed line in FIG. 2 to indicate that it is not going to occur in this example because of the malware 206 checking for the presence of a virtual machine.
- FIG. 3 shows a flow diagram of a method 300 of preventing malicious codes from performing malicious actions in a computer system in accordance with an embodiment of the present invention.
- the method of 300 is explained using the components shown in FIG. 1 for illustration purposes only. Other components may also be employed without deviating from the scope and spirit of the invention.
- the method 300 begins by identifying computer program actions that are handled differently depending on the presence of a virtual machine (step 301 ). For example, antivirus researchers my identify computer instructions that are executed differently by the processor 101 depending on whether or not the instruction is from a computer program running a virtual machine (step 301 ). These instructions may be maintained in an instruction list 113 for later consultation by the presence simulator 112 . As can be appreciated, the computer program actions may include actions other than issuing an instruction, including issuing a function, procedure, thread, etc.
- the presence simulator 112 may intercept an action performed by a computer program in the computer 100 (step 302 ). For example, the presence simulator 112 may intercept an instruction issued by a computer program in the computer 100 before the instruction is executed by the processor 101 . This allows the presence simulator 112 to determine if the instruction is issued to check for presence of a virtual machine.
- the presence simulator 112 may deem the computer program to be malicious code and respond to the action according to virtual machine convention to mislead the computer program into assuming that it is running in a virtual machine environment. For example, if the action consists of an instruction included in the instruction list 113 , the presence simulator 112 may respond to the instruction in a manner expected in a virtual machine environment. Depending on the virtual machine being simulated, the response to the action may include returning particular register values, memory addresses, and other responses expected of the virtual machine in that situation.
- the presence simulator 112 may allow execution of the action. For example, if the action consists of an instruction that is handled by the processor 101 the same way regardless of whether or not the computer program is running in a virtual machine, the presence simulator 112 may pass the instruction for execution by the processor 101 .
- Embodiments of the present invention provide advantages heretofore unrealized. Embodiments of the present invention do not rely on virus scanning algorithms and accordingly do not consume large amounts of computing resources. These embodiments are also relatively easy to incorporate into existing antivirus products with minimal need for continuing service support. These embodiments may also be implemented as a stand-alone program depending on the application.
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